4.7 Article

Influence of sun zenith angle on canopy clumping and the resulting impacts on photosynthesis

Journal

AGRICULTURAL AND FOREST METEOROLOGY
Volume 291, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.agrformet.2020.108065

Keywords

Vegetation canopy architecture; Vegetation structure; Clumping index; Gross primary productivity; Radiative transfer schemes; Digital hemispherical photography; Parameterization schemes

Funding

  1. 'Science without Borders' Program at the University of Reading [9549-13-7]
  2. CAPES - Brazilian Federal Agency for Support and Evaluation of Graduate Education within the Ministry of Education of Brazil
  3. U.S. Department of Energy, Office of Science, Office of Biological and Environmental Research, Terrestrial Ecosystem Science program [DE-SC0008317, DE-SC0016188]
  4. NASA IDS program
  5. NERC National center for Earth Observation
  6. U.S. Department of Energy (DOE) [DE-SC0008317] Funding Source: U.S. Department of Energy (DOE)

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Addressing the impact of vegetation architecture on shortwave radiation transfer in land surface models is important for accurate weather forecasting, carbon budget estimates, and climate predictions. This paper investigates to what extent it is possible to retrieve structural parameters of two different parameterization schemes from direct transmittance derived from digital hemispherical photography and 3D radiative transfer modeling for two study sites with different vegetation canopy architectures. Neglecting the representation of 3D canopy structure in radiative transfer schemes leads to significant errors in shortwave radiation partitioning (up to 3.5 times more direct transmittance in the 3D model). Structural parameters, referred to as whole canopy 'clumping indices', were obtained in order to evaluate the impact of angular variation in clumping on shortwave radiation transfer. Impacts on photosynthesis were evaluated at site level with the UKESM land surface model, JULES. A comparison between flux tower derived and modeled photosynthesis indicates that considering zenith angular variations of structural parameters in the radiative transfer scheme of the UKESM land surface model significantly improves photosynthesis prediction in light limited ecosystems (from RMSE = 2.91 mu mol CO2.m(-2).s(-1) to RMSE = 1.51 mu mol CO2.m(-2).s(-1), 48% smaller), typically with enhanced photosynthesis from bottom layers.

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